Controlled potential electrolysis. III. Controlled potential electrolysis of omega-nitrostyrene.
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The present study was designed to identify the free radicals generated during the electrolysis of the solution used to perfuse isolated rat heart Langendorff preparations. The high reactivity and very short half-life of oxygen free radicals make their detection and identification difficult. A diamagnetic organic molecule (spin trap) can be used to react with a specific radical to produce a more stable secondary radical or "spin adduct" detected by electron spin resonance (ESR). Isovolumic left ventricular systolic pressure (LVSP) and left ventricular end diastolic pressure (LVEDP) were measured by a fluid-filled latex balloon inserted into the left ventricle. The coronary flow was measured by effluent collection. Electrolysis was performed with constant currents of 0.5, 1, 1.5, 3, 5, 7.5, and 10 mA generated by a Grass stimulator and applied to the perfusion solution for 1 min. A group of experiments was done using a 1.5 mA current and a Krebs-Henseleit (K-H) solution containing free radical scavengers (superoxide dismutase (SOD): 100 IU/ml or mannitol: 50 mM). Heart function rapidly declined in hearts perfused with K-H buffer that had been electrolyzed for 1 min. The addition of mannitol (50 mM) to the perfusion solution had no effect on baseline cardiac function before electrolysis while SOD (100 IU/ml) increased the coronary flow. However, SOD was more effective than the mannitol in protecting the heart against decreased of cardiac function, 5 min after the end of electrolysis. Samples of the K-H medium subjected to electrolysis were collected in cuvettes containing a final concentration of 125 mM 5,5-dimethyl-1-pyrroline-N-oxide (DMPO) and analyzed by spectroscopy. The ESR spectrum consisted of a quartet signal (hyperfine couplings aN = aH = 14.9 G) originating from the hydroxyl adduct signal, DMPO-OH. The intensity of the DMPO-OH signal remained stable during the 60 s of electrolysis and the quantity of free radicals induced by electrolysis was directly proportional to the intensity of the current. The addition of mannitol and SOD to the perfusate scavenged the hydroxyl radicals present in the solution, suggesting that both hydroxyl and superoxide radicals were formed during electrolysis.
BACKGROUND: Most university medical centers do not directly offer electrolysis or thermolysis services to hirsute patients. Little research activity has been focused on these procedures. The successful introduction of a clinical and research electrolysis service into the University of Texas Medical Branch (UTMB) dermatology clinic is described. OBJECTIVE: The purpose of this communication is to familiarize clinicians with an electrolysis service in a university clinic setting. New advances in permanent hair removal equipment and methods are reviewed. METHODS: A description of the UTMB electrolysis clinic is given. RESULTS: Electrolysis services offered by the UTMB dermatology department have been well received by patients, clinical staff, UTMB faculty, UTMB resident physicians, and private physicians. CONCLUSION: This successful medical model for electrolysis services may provide other university dermatology clinics with background information for the development of their own programs. Future research advances in electrolysis and the management of hirsutism may result from this activity.
Electrolysis has been performed since 1875. Electrolysis satisfactorily removes hair from women with static hair growth, but women with hirsutism often require concomitant management of their hormonal problems. We have found the blend method to be the most effective modality for permanent hair removal. Attention must be given to proper electrolysis technique, including accurate needle insertion and appropriate intensities and duration. Scarring does not occur with properly performed electrolysis. Hair is not an electrical conductor and electronic tweezers do not result in permanent hair removal. Shaving 1 to 5 days before electrolysis greatly increases efficacy because it ensures that only growing anagen hairs are epilated. The recent availability of EMLA (eutectic mixture of local anesthetics) has been beneficial in reducing the sensations of electrolysis. The availability of prepackaged, presterilized, individual electrolysis needles has greatly reduced the need for more complicated sterilization procedures.
There are three electrolysis modalities. In galvanic electrolysis, a direct current is passed down a needle inserted into the hair follicle, destroying the follicle. In thermolysis a high frequency alternating current is passed down the needle and produces destructive heat. The blend is the third modality, which combines galvanic electrolysis and thermololysis. Electrolysis satisfactorily removes hair from women and men with hypertrichosis, but women with hirsutism require concomitant hormonal management. Scarring does not occur with properly performed electrolysis. Shaving one to five days before electrolysis greatly increases efficacy because it ensures that only growing anagen hairs are epilated. The judicious use of ice packs and the recent availability of EMLA (lidocaine/prilocaine cream) have been beneficial in reducing the sensations of electrolysis.
BACKGROUND: Dermatologists' attitudes toward independent electrolysis practice by nonphysicians has historically ranged from the critical to the praiseworthy. It is hypothesized that dermatologists' attitudes toward independent electrolysis practice by nonphysicians is related to physicians' perception of licensing requirements for independent nonphysician electrologists (INE). METHODS: Nine hundred and thirty-seven fellows of the American Academy of Dermatology (AAD) residing in the Southern United States were anonymously surveyed about independent electrolysis practice by nonphysicians. The results of the survey were analyzed using the Pearson chi-square test. RESULTS: Dermatologists who perceived that licensing was required for INE were significantly more likely to refer patients to INE for hair removal (P = 0.001) and prescribe EMLA cream (lidocaine 2.5% and prilocaine 2.5%) to patients requesting it for electrolysis performed by INE (P = 0.001). However, those dermatologists who had electrolysis services available in their practice settings (15.1%) were significantly less likely to refer patients to INE (P = 0.001) and to prescribe EMLA cream to patients seeking electrolysis from INE (P = 0.034). Only 5.7% of responding dermatologists supported the use of hair removal lasers by INE. CONCLUSION: Dermatologists' attitudes toward INE generally appear to be positively related to perceived licensure requirements for INE, but these positive attitudes do not extend to independent laser use by nonphysician electrologists for hair removal.
BACKGROUND: Different techniques have been used for hair removal. Electrolytic epilation is a widely accepted method for this purpose. Recently laser hair removal was introduced. OBJECTIVE: To evaluate and compare the effectiveness of long-pulse alexandrite laser hair removal with electrolytic epilation. METHODS: Twenty-four areas of unwanted axillar hair in 12 patients were included in the study. The right axillar area of the patients was treated by electrolysis with an intensity of 4-8 mA, and the left area was treated with long-pulse alexandrite laser with fluences between 30 and 50 J/cm2. Electrolysis was performed four times at 3-week intervals, and laser treatment was performed three times at 4-week intervals. Before each session, the hairs in a 4 cm2 area centered in the axilla were counted. The last evaluation was done 6 months after the initial treatment. The pain, time, and cost of each procedure are compared. RESULTS: The average clearance rate of the hairs was 74% by laser and 35% by electrolysis 6 months after the initial treatment. CONCLUSION: Alexandrite laser hair removal is a more reliable and practical solution than electrolysis. Laser hair removal is more expensive than electrolysis, but is 60 times faster and less painful than electrolysis; also fewer sessions are needed with the laser with better results.
Physicians frequently recommend electroepilation (electrolysis) in the management of hirsutism, but there have been no English language reports of its clinical effectiveness. We performed over 35,000 hours of electroepilation (electrolysis) on two hundred eighty-one women over a 4-year period. We used conventional, commercially available electroepilation (electrolysis) equipment that produced both thermolysis and blend type currents. We found that electroepilation (electrolysis) helps control hirsutism, and 93% of the patients improved. There was no scarring. For best results electroepilation (electrolysis) must be combined with treatment of excess androgens. Instructions about good grooming and stressing that shaving is not harmful will help to maximize improvement in appearance. Electroepilation (electrolysis) is expensive and not readily available to those lacking insurance or other funding.
In the present investigation, we used electrolysis as a source of oxygen free radicals to test their possible role in norepinephrine release, as well as in the mechanism of cellular injury, cardiac dysfunction and arrhythmias. In the isolated rat heart perfused under constant pressure, according to the Langendorff technique, electrolysis of the Krebs-Henseleit solution (10 mA d.c. current for 1 min) produced myocardial irreversible dysfunction within 5 min. Fifteen minutes after electrolysis, significant falls in the left ventricular pressure (from 87.5 +/- 6.8 to 33.7 +/- 5.2 mmHg), dP/dt max (from 1230 +/- 90 to 375 +/- 59 mmHg/s), heart rate (from 287 +/- 18 to 119 +/- 13.5 beats/min) and coronary flow (from 14.8 +/- 9 to 3.4 +/- 1.7 ml/min) were observed, along with an increase in left ventricular end diastolic pressure from 10 to 50 +/- 3.5 mmHg (n = 8, P less than 0.01). AV conduction block and/or sinus bradycardia were noted in all preparations. An increase in norepinephrine washout from 298.5 +/- 84 at baseline to 610 +/- 110 pg/min/g 5 min after electrolysis was measured (n = 8, P less than 0.05) and a 44.8 +/- 9.2% and 35 +/- 7.5% reduction, respectively in right and left ventricular tissue norepinephrine content was also found at 30 min (n = 5, P less than 0.05). Pretreatment of the hearts 10 min before electrolysis and throughout the experimental period by superoxide dismutase (SOD; 100 U/ml), catalase (150 U/ml), a combination of SOD + catalase or mannitol (50 mM) partially blocked the deleterious effect of free radicals and permitted a functional recovery of 50 to 60%, mannitol being the more potent protective agent. Furthermore, these scavengers also significantly reduced norepinephrine washout.(ABSTRACT TRUNCATED AT 250 WORDS)
The kinetics of the removal of beta-lactoglobulin (beta-Lg) adsorbed on a stainless steel surface by H(2)O(2)-electrolysis treatment, in which hydroxyl radicals (.OHs) generated by the electrolysis of hydrogen peroxide decompose the substances adhering on the surface, was investigated. The rate of removal of the adsorbed beta-Lg from the stainless steel surface during the treatment was monitored in situ by ellipsometry. The dependencies of the removal rate on the H(2)O(2) concentration, the electric potential applied to the surface, and the supporting electrolyte concentration were examined and the results were compared with those obtained for the treatment of a titanium surface. Differences in the removal rates of the protein from the stainless steel and titanium surfaces are discussed with respect to differences in the nature of the interaction between the protein and the surface. The atomic compositions of the stainless steel surface before and after treatment were analyzed by Auger electron spectroscopy, and the stainless steel surface was found not to be affected by the H(2)O(2)-electrolysis treatment. The influences of various coexisting materials on removal characteristics during the H(2)O(2)-electrolysis treatment were also investigated. The difference between the effect of coexisting substances on the decomposition rate for the radical reaction in the H(2)O(2)-electrolysis treatment and that for the well-known UV-H(2)O(2) treatment in bulk solution is discussed.
There is an increasing incidence in health problems related to environmental issues that originate from inadequate treatment of potable waters. This has compelled scientists and engineers to engage in innovative technologies to achieve a maximum disinfection at affordable costs. Some species of bacteria produce colonies and spores that can agglomerate in spherical clusters and thus protect organisms on the inside of the cluster against biocidal attack. Flocs of fine particles (e.g., clay) can entrap bacteria and this can also protect them against the biocides. Other bacteria have the ability to mutate, thus building up resistance to conventional biocides (e.g., chlorine). Ultrasound has been shown to be effective in improving the effectiveness of biocides such as chlorine. The aim of this present study was to investigate the effect of electrolysis and power ultrasound as a disinfection treatment and to provide a greater knowledge of the fundamentals of disinfection through the production of hypochlorite in situ from saline solution via electrolysis. The electrode materials investigated were, carbon (felt and graphite), copper and stainless steel rods. The results show that sonication appears to amplify the effect of electrolysis. A combination of both treatments is significantly better than sonication or electrolysis alone.
Growth hormone releasing peptide (GHRP, sequence His-D-Trp-Ala-Trp-D-Phe-Lys-NH2) is a synthetic hexapeptide under consideration for transdermal iontophoretic drug delivery. Cyclic voltammetry, controlled-potential electrolysis, HPLC/UV analysis, LC/MS/MS analysis, and EPR spin-trapping studies indicate that the electrolysis-induced oxidative degradation of GHRP is likely to be mediated by electrogenerated oxygen radicals from the electrolysis of water. Within 2 h and up to 2.5 V versus an Ag/AgCl reference electrode, the peptide backbone remains largely intact. The chemical modifications are selectively on imidazole (histidine) and indole (tryptophan). Strategies for alleviating the electrolysis-induced degradation of GHRP are proposed.
Experiments were conducted to study the role of micro-electrolysis in removing chromaticity and COD and improving the biodegradability of wastewater from pharmaceutical, dye-printing and papermaking plants. Results showed that the use of micro-electrolysis technology could remove more than 90% of chromaticity and more than 50% of COD and greatly improved the biodegradability of pharmaceutical wastewater. Lower initial pH could be advantageous to the removal of chromaticity. A retention time of 30 minutes was recommended for the process design of micro-electrolysis. For the use of micro-electrolysis in treatment of dye-printing wastewater, the removal rates of both chromaticity and COD were increased from neutral condition to acid condition for disperse blue wastewater; more than 90% of chromaticity and more than 50% of COD could be removed in neutral condition for vital red wastewater.
In order to make electrolytic tumor destruction more effective new electrode materials were tested (Part I) as well as a combination of electrolysis and megavolt therapy (Part II). All tests were performed in experimental tumors implanted subcutaneously in rats. Altogether in 41 rats in 5 series (Part I) electrodes made of rhodium (Rh), copper (Cu), or brass (Zn-Cu alloy) were investigated but the effect was not found to be better than that of the previously tested platinum (Pt). Oxidation and corrosion made Rh and Cu electrodes less suitable for electrolysis compared to Pt, while brass electrodes became isolated through zinc-salt-formation and performed unsatisfactorily. The radiosensitizing properties of electrolysis were tested in 55 rats with experimental tumors (Part II). One control group had only Co-irradiation, while in 2 other groups Cu- or Pt-electrolysis of the tumors was carried out before irradiation. The combined treatment resulted in a significantly better effect on the tumors, registered as inhibition of tumor growth or disappearance of tumor. As the electrolyzed, necrotic tissue remained in the tumor the effect might not be mediated through diminished target volume. An inflammatory reaction around the electrolytic lesion with increased blood flow and higher oxygenation of the tumor could cause a more positive response to megavolt treatment.
Measurements of pancreatic microflow were investigated using hydrogen gas generated by electrolysis in dog. After laparatomy under general anesthesia, uncinate process of the pancreas was punctured by a needle electrode for electrolysis and determination of hydrogen gas. The consecutive measurements of pancreatic microflow revealed the good reproducibility at the same point of the pancreas. The simultaneous measurements of pancreatic microflow by electrolysis and pancreatic tissue blood flow by H2 inhalation method were carried out at the same point of the pancreas. Correlation analysis of both measurements revealed coefficient of 0.751 and a significant relationship was observed (p less than 0.05). However, the value was a little higher in pancreatic microflow as compared with pancreatic tissue blood flow. Pancreatic microflow and pancreatic exocrine secretion increased after intravenous administration of Dopamine and Secretin (10 micrograms/kg/min). It is concluded that the measurement of pancreatic microflow by hydrogen gas generated by electrolysis is a useful method on understanding the microcirculation of the pancreas.
The main factors limiting the possibility of organizing the cultivation of the hydrogen-oxidizing bacterium Alcaligenes eutropha Z-1 in combination with electrolysis were determined: accumulation of the oxidizing agents (hypochlorite, persulfate ions, hydrogen peroxide) in the process of electrolysis and deposition of microelements contained in the growth medium on the cathode. The limits for the susceptibility of the bacterium to the oxidizing agents were established. The rate of accumulation of the oxidizing agents and formation of the cathode deposit were found to depend on the current density, the pH and composition of a solution, and several other factors. The concentration of hypochlorite decreased if the content of chloride ions in the growth medium was reduced to approximately 10(-5) g/l; the concentrations of persulfate and hydrogen peroxide is decreased using a certain electrolysis regime and adding ferrous ions which reduce the oxidizing agents. The cathode deposit is dissolved by periodically reversing the current in the course of electrolysis.